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The electrothermal response of the diaphragm structure has one-pole, low-pass filtering characteristics.
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The structure has a diaphragm thickness of 3 μm, a diaphragm size of 0.5 mm × 0.5 mm, and an air gap of 1.0 μm.
The accelerating efficiency of traditional RFQ structure is limited by transverse focusing and the drift tube structure has higher efficiency, so the Seperated Function RFQ (SFRFQ) with diaphragms was proposed in this paper, where the accelerating gaps were formed by diaphragms meanwhile keeping enough electric quadrupole focusing.
Structure had imposed order.
Previous studies have shown that controlled mechanical ventilation has detrimental effects on diaphragm structure and function.
In this paper, a simple method to more accurately estimate peak interstory drifts that accounts for higher mode effects is described for low-rise perimeter shear wall structures having flexible diaphragms or even for stiff diaphragms.
Numerous data exists, even in humans [2, 3], that CMV could have deleterious effect on diaphragm structure and function.
In the present study, the amplification of forces and displacements in flexible diaphragms was investigated for low-rise structures having relatively stiff perimeter shear walls.
The sensor element is 6.0 mm×6.0 mm×0.4 mm, and it has a displacement sensor element of piezo-resistance at the periphery of the diaphragm structure.
At E16 similar endplate structures have evolved in WT and γ/ε-fc diaphragm (Fig. 3E).
The stress control test of highly boron doped polysilicon-oxide diaphragm structure was carried out.
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